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Published on: September 8, 2023
Neural-Network-Assisted Bayesian Qubit Readout at the Single-Photon Level for Scalable Atomic Quantum Processors
Yaoting Zhou1, Weisen Wang1, Zhuangzhuang Tian1
1Shanxi University, State Key Laboratory of Quantum Optics Technologies and Devices, Institute of Opto-Electronics, Taiyuan 030006, China.
We developed a neural network-assisted Bayesian method for quantum state readout in neutral atom arrays. This technique overcomes limitations of traditional methods, achieving high fidelity even with significant signal overlap.
Area of Science:
- Quantum Information Science
- Atomic Physics
- Machine Learning Applications
Background:
- Scalable quantum information processing requires efficient quantum state readout.
- Neutral atom arrays use fluorescence readout, necessitating short exposures to prevent atom loss.
- Conventional threshold discrimination fails in the single-photon regime due to overlapping state distributions.
Purpose of the Study:
- To develop a robust quantum state readout method for neutral atom arrays.
- To address the challenge of overlapping state distributions in fluorescence readout.
- To improve readout fidelity and enable extraction of quantum dynamics.
Main Methods:
- Implemented a neural-network-assisted Bayesian inference for fluorescence readout.
- Introduced a weakly anchored Bayesian scheme requiring calibration of only one state.
- Utilized a permutation-invariant neural network for a 100-fold speedup in Bayesian inference.
Main Results:
- Achieved relative readout fidelity above 99% for 61% histogram overlap and 98% for 72% overlap.
- Demonstrated reliable extraction of Rabi oscillations and Ramsey interference.
- Results surpass the capabilities of conventional threshold-based readout methods.
Conclusions:
- The neural-network-assisted Bayesian method significantly enhances quantum state readout fidelity in neutral atom arrays.
- This approach overcomes fundamental limitations of threshold discrimination in low photon count regimes.
- The developed technique is crucial for advancing scalable quantum information processing.
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